工业构件地震易损性评估的UQ状态依赖框架

IF 9.4 1区 工程技术 Q1 ENGINEERING, INDUSTRIAL
Chiara Nardin , Stefano Marelli , Oreste S. Bursi , Bruno Sudret , Marco Broccardo
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引用次数: 0

摘要

最近,人们对评估工业厂房和工艺设备的地震脆弱性越来越感兴趣。这反映在越来越多的研究、社区资助的研究项目和关于这个问题的实验运动中。尽管如此,问题的复杂性及其固有的建模,加上工艺设备可用数据的普遍缺乏,限制了风险评估方法的发展。事实上,这些限制导致了简化和快速运行模型的创建。在此背景下,我们提出了一个开发依赖于国家的脆弱性函数的创新框架。这种新方法结合了有限的数据与元建模和统计技术的力量,即多项式混沌展开(PCE)和自举。因此,我们在具有Bouc-Wen迟滞的简化且计算效率高的多自由度系统上验证了该框架。然后,我们在一个真实的非结构性工业过程组件上进行了测试。具体而言,我们将状态相关脆弱性框架应用于多部件全尺寸3D钢支撑框架(BF)的关键垂直罐。通过欧洲SPIF项目的振动台运动,对加装工艺构件的高炉的抗震性能进行了研究。最后,我们基于PCE和bootstrap的结合,得到了状态相关的脆弱性函数,大大降低了计算成本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
UQ state-dependent framework for seismic fragility assessment of industrial components
Recently, there has been increased interest in assessing the seismic fragility of industrial plants and process equipment. This is reflected in the growing number of studies, community-funded research projects and experimental campaigns on the matter. Nonetheless, the complexity of the problem and its inherent modelling, coupled with a general scarcity of available data on process equipment, has limited the development of risk assessment methods. In fact, these limitations have led to the creation of simplified and quick-to-run models. In this context, we propose an innovative framework for developing state-dependent fragility functions. This new methodology combines limited data with the power of metamodelling and statistical techniques, namely polynomial chaos expansions (PCE) and bootstrapping. Therefore, we validated the framework on a simplified and computationally efficient MDoF system endowed with Bouc–Wen hysteresis. Then, we tested it on a real nonstructural industrial process component. Specifically, we applied the state-dependent fragility framework to a critical vertical tank of a multicomponent full-scale 3D steel braced frame (BF). The seismic performance of the BF endowed with process components was captured by means of shake table campaign within the European SPIF project. Finally, we derived state-dependent fragility functions based on the combination of PCE and bootstrap at a greatly reduced computational cost.
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来源期刊
Reliability Engineering & System Safety
Reliability Engineering & System Safety 管理科学-工程:工业
CiteScore
15.20
自引率
39.50%
发文量
621
审稿时长
67 days
期刊介绍: Elsevier publishes Reliability Engineering & System Safety in association with the European Safety and Reliability Association and the Safety Engineering and Risk Analysis Division. The international journal is devoted to developing and applying methods to enhance the safety and reliability of complex technological systems, like nuclear power plants, chemical plants, hazardous waste facilities, space systems, offshore and maritime systems, transportation systems, constructed infrastructure, and manufacturing plants. The journal normally publishes only articles that involve the analysis of substantive problems related to the reliability of complex systems or present techniques and/or theoretical results that have a discernable relationship to the solution of such problems. An important aim is to balance academic material and practical applications.
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